首页> 外文期刊>Biofuels, bioproducts & biorefining: Biofpr >Toward a fundamental understanding of cellulase-lignin interactions in the whole slurry enzymatic saccharification process
【24h】

Toward a fundamental understanding of cellulase-lignin interactions in the whole slurry enzymatic saccharification process

机译:朝着整个浆料酶糖化过程中对纤维素酶 - 木质素相互作用的根本了解

获取原文
获取原文并翻译 | 示例
           

摘要

Lignocellulosic biomass is a promising feedstock for sustainable production of non-food building-block sugars. This bioconversion process is preferentially carried out through the whole slurry enzymatic saccharification of the pre-treated lignocellulosic substrates. However, dissolved lignin, residual lignin, and lignin-derived phenolic molecules in the pre-treated biomass slurry can all trigger the decrease in activity and stability of cellulases, as well as the unfavorable enzyme recyclability. The hydrolyzing efficiencies can be considerably hindered by the lignin-induced non-productive binding of cellulases through various mechanisms. Three major non-covalent forces, i.e., hydrophobic, electrostatic, and hydrogen bonds interactions, can occur between the amino acid residues in cellulases and the functional groups in lignin. Various strategies such as enzyme engineering, substrate modification, additive blocking have been intensively developed to minimize the cellulase-lignin interactions. To investigate the impacts and benefits of different mechanisms and processes, this paper provides a systematic overview of the current opinions about the non-productive binding of cellulase to lignin. Through better understanding of their interactions it is our hope that the enzyme binding groups in lignin could be properly quenched by using new pre-treatment methods and/or biochemical processing strategies to increase the efficiency of cellulose bioconversion. (c) 2016 Society of Chemical Industry and John Wiley & Sons, Ltd
机译:木质纤维素生物量是用于可持续生产非食物建筑阻滞糖的有希望的原料。通过预处理的木质纤维素基材的整个浆料酶糖化,优先进行该生物转化方法。然而,在预处理的生物质浆料中溶解的木质素,残留的木质素和木质素衍生的酚类分子都可以引发纤维素酶的活性和稳定性的降低,以及不利的酶再循环性。通过各种机制,通过木质素诱导的木质素诱导的纤维素酶的非生产结合可显着阻碍水解效率。三个主要的非共价力,即疏水性,静电和氢键相互作用,可以在纤维素酶的氨基酸残基与木质素中的官能团之间发生。诸如酶工程,底物改性,添加剂阻断等各种策略已经集中开发,以最小化纤维素酶 - 木质素相互作用。为了调查不同机制和过程的影响和益处,本文提供了对关于纤维素酶对木质素的非生产结合的目前意见的系统概述。通过更好地理解他们的相互作用,我们希望通过使用新的预处理方法和/或生物化学加工策略来提高纤维素生物转化效率的酶可以适当地淬灭木质素中的酶结合基团。 (c)2016化学工业协会和约翰瓦里和儿子有限公司

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号